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Live Imaging Assay for Assessing the Roles of Ca2+ and Sphingomyelinase in the Repair of Pore-forming Toxin Wounds
Published on: August 25, 2013
Exaptation of two ancient immune proteins into a new dimeric pore-forming toxin in snails
M L Giglio1, S Ituarte1, V Milesi2
1Instituto de Investigaciones Bioquímicas de La Plata "Prof. Dr. Rodolfo R. Brenner", INIBIOLP, CONICET CCT La Plata - Universidad Nacional de La Plata (UNLP), Facultad de Ciencias Médicas,1900 La Plata, Argentina.
Abstract:
The Membrane Attack Complex-Perforin (MACPF) family is ubiquitously found in all kingdoms. They have diverse cellular roles, however MACPFs with pore-forming toxic function in venoms and poisons are very rare in animals. Here we present the structure of PmPV2, a MACPF toxin from the poisonous apple snail eggs, that can affect the digestive and nervous systems of potential predators. We report the three-dimensional structure of PmPV2, at 17.2 Å resolution determined by negative-stain electron microscopy and its solution structure by small angle X-ray scattering (SAXS). We found that PV2s differ from nearly all MACPFs in two respects: it is a dimer in solution and protomers combine two immune proteins into an AB toxin. The MACPF chain is linked by a single disulfide bond to a tachylectin chain, and two heterodimers are arranged head-to-tail by non-covalent forces in the native protein. MACPF domain is fused with a putative new Ct-accessory domain exclusive to invertebrates. The tachylectin is a six-bladed β-propeller, similar to animal tectonins. We experimentally validated the predicted functions of both subunits and demonstrated for the first time that PV2s are true pore-forming toxins. The tachylectin "B" delivery subunit would bind to target membranes, and then the MACPF "A" toxic subunit would disrupt lipid bilayers forming large pores altering the plasma membrane conductance. These results indicate that PV2s toxicity evolved by linking two immune proteins where their combined preexisting functions gave rise to a new toxic entity with a novel role in defense against predation. This structure is an unparalleled example of protein exaptation.
Insights
Apple snail egg toxin PmPV2, a rare pore-forming animal toxin, reveals a novel AB toxin structure. This Membrane Attack Complex-Perforin (MACPF) toxin combines immune proteins for defense against predation.
Area of Science:
- Biochemistry and Structural Biology
- Evolutionary Biology
- Toxicology
Background:
- The Membrane Attack Complex-Perforin (MACPF) protein family has diverse roles but rarely exhibits pore-forming toxic functions in animal venoms.
- Pore-forming toxins are crucial for cellular defense and predation, yet their evolution and structural diversity are not fully understood.
Purpose of the Study:
- To elucidate the three-dimensional structure and functional mechanism of PmPV2, a MACPF toxin from poisonous apple snail eggs.
- To investigate the evolutionary novelty of PmPV2 as a rare animal pore-forming toxin.
Main Methods:
- Determined the structure of PmPV2 using negative-stain electron microscopy (17.2 Å resolution) and small-angle X-ray scattering (SAXS).
- Experimentally validated the predicted functions of the toxin's subunits.
Main Results:
- PmPV2 exhibits a unique dimeric structure, forming an AB toxin by combining MACPF and tachylectin immune proteins.
- The MACPF domain is fused with a novel invertebrate-specific Ct-accessory domain.
- PmPV2 functions as a true pore-forming toxin, with the tachylectin subunit delivering the MACPF subunit to disrupt lipid bilayers and alter membrane conductance.
Conclusions:
- PV2s represent a novel class of pore-forming toxins evolved through protein exaptation, linking two immune proteins for a new defensive role.
- This finding provides an unparalleled example of how existing protein functions can be repurposed to create novel toxic entities.
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